Characterization of the Arn lipopolysaccharide modification system essential for zeamine resistance unveils its new roles in Dickeya oryzae physiology and virulence

Author:

Liang Zhibin12ORCID,Huang Luhao1,Liu Huidi12,Zheng Ying1,Feng Jiani1,Shi Zurong13,Chen Yufan14,Lv Mingfa15ORCID,Zhou Jianuan12ORCID,Zhang Lian‐Hui12,Chen Shaohua12

Affiliation:

1. Guangdong Province Key Laboratory of Microbial Signals and Disease Control, Integrative Microbiology Research Centre South China Agricultural University Guangzhou China

2. Guangdong Laboratory for Lingnan Modern Agriculture Guangzhou China

3. School of Biological Engineering Huainan Normal University Huainan China

4. Research Center of Chinese Herbal Resource Science and Engineering Guangzhou University of Chinese Medicine Guangzhou China

5. College of Plant Protection Fujian Agriculture and Forestry University Fuzhou China

Abstract

AbstractThe zeamines produced by Dickeya oryzae are potent polyamine antibiotics and phytotoxins that are essential for bacterial virulence. We recently showed that the RND efflux pump DesABC in D. oryzae confers partial resistance to zeamines. To fully elucidate the bacterial self‐protection mechanisms, in this study we used transposon mutagenesis to identify the genes encoding proteins involved in zeamine resistance in D. oryzae EC1. This led to the identification of a seven‐gene operon, arnEC1, that encodes enzyme homologues associated with lipopolysaccharide modification. Deletion of the arnEC1 genes in strain EC1 compromised its zeamine resistance 8‐ to 16‐fold. Further deletion of the des gene in the arnEC1 mutant background reduced zeamine resistance to a level similar to that of the zeamine‐sensitive Escherichia coli DH5α. Intriguingly, the arnEC1 mutants showed varied bacterial virulence on rice, potato, and Chinese cabbage. Further analyses demonstrated that ArnBCATEC1 are involved in maintenance of the bacterial nonmucoid morphotype by repressing the expression of capsular polysaccharide genes and that ArnBEC1 is a bacterial virulence determinant, influencing transcriptional expression of over 650 genes and playing a key role in modulating bacterial motility and virulence. Taken together, these findings decipher a novel zeamine resistance mechanism in D. oryzae and document new roles of the Arn enzymes in modulation of bacterial physiology and virulence.

Funder

Guangzhou Municipal Science and Technology Project

National Natural Science Foundation of China

Natural Science Foundation of Anhui Province

Publisher

Wiley

Subject

Plant Science,Soil Science,Agronomy and Crop Science,Molecular Biology

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